Optoelectronic devices based on thin single-crystalline semiconductor films and non-epitaxial optical cavities
10777700 ยท 2020-09-15
Assignee
- Wisconsin Alumni Research Foundation (Madison, WI)
- The Research Foundation For The State University Of New York (Amherst, NY)
Inventors
- Zhenqiang Ma (Middleton, WI, US)
- Zhenyang Xia (Madison, WI, US)
- Qiaoqiang Gan (Buffalo, NY, US)
- Haomin Song (Buffalo, NY, US)
- Zongfu Yu (Madison, WI, US)
- Ming Zhou (Middleton, WI, US)
Cpc classification
H01L31/032
ELECTRICITY
H01L31/0304
ELECTRICITY
G01J3/42
PHYSICS
H01L31/02327
ELECTRICITY
H01L31/0296
ELECTRICITY
H01L31/028
ELECTRICITY
H01L31/1136
ELECTRICITY
International classification
H01L31/11
ELECTRICITY
H01L31/113
ELECTRICITY
H01L31/032
ELECTRICITY
H01L31/0304
ELECTRICITY
H01L31/0296
ELECTRICITY
G01J3/42
PHYSICS
H01L31/0232
ELECTRICITY
H01L31/028
ELECTRICITY
H01L31/18
ELECTRICITY
Abstract
Optoelectronic devices that use very thin single-crystalline inorganic semiconductor films as phonon-absorbing layers in combination with non-lattice optical cavities are provided.
Claims
1. An optoelectronic device comprising: an optical cavity comprising a reflector and a dielectric spacer overlying the reflector; and a single-crystalline inorganic semiconductor film having a thickness no greater than 100 nm in contact with the dielectric spacer at a non-epitaxial interface.
2. The device of claim 1, wherein the single-crystalline inorganic semiconductor film comprises a Group IV semiconductor, a Group II-VI semiconductor, or a Group III-V semiconductor.
3. The device of claim 1, wherein the single-crystalline inorganic semiconductor film comprises a 2D semiconductor.
4. The device of claim 3, wherein the 2D semiconductor is a transition metal dichalcogenide.
5. The device of claim 4, wherein the transition metal dichalcogenide is a tungsten dichalcogenide.
6. The device of claim 4, wherein the transition metal dichalcogenide is a transition metal selenide or a transition metal telluride.
7. The device of claim 1, wherein the single-crystalline inorganic semiconductor film has a thickness no greater than 50 nm.
8. The device of claim 1, wherein the single-crystalline inorganic semiconductor film has a thickness no greater than 20 nm.
9. The device of claim 1, wherein the single-crystalline inorganic semiconductor film is characterized in that it absorbs radiation with wavelengths in the visible region of the electromagnetic spectrum, the infrared region of the electromagnetic spectrum, or both.
10. The device of claim 2, wherein the single-crystalline inorganic semiconductor is a Group IV semiconductor.
11. The device of claim 10, wherein the Group IV semiconductor is Ge.
12. The device of claim 11, wherein the dielectric spacer comprises Al.sub.2O.sub.3.
13. The device of claim 1, wherein the dielectric spacer comprises Al.sub.2O.sub.3.
14. The device of claim 1, wherein the single-crystalline inorganic semiconductor film is a continuous film without patterned openings or islands.
15. A phototransistor comprising: an optical cavity comprising an electrically conductive reflector and a dielectric spacer overlying the reflector; a single-crystalline inorganic semiconductor film having a thickness no greater than 100 nm in contact with the dielectric spacer at a non-epitaxial interface; a source electrode; and a drain electrode, wherein the source electrode and the drain electrode are in electrical communication with the single-crystalline semiconductor film.
16. The phototransistor of claim 15, wherein the phototransistor has a normalized photocurrent-to-dark-current ratio of at least 110.sup.4 mW.sup.1 under a bias of 1 V when illuminated with broadband radiation at an incident power of 40 nW.
17. The phototransistor of claim 15, wherein the phototransistor has a normalized photocurrent-to-dark-current ratio in the range from 110.sup.4 mW.sup.1 to 110.sup.5 mW.sup.1 under a bias of 1 V when illuminated with broadband radiation at an incident power of 40 nW.
18. The phototransistor of claim 16, wherein the single-crystalline inorganic semiconductor is germanium and the single-crystalline inorganic semiconductor film has a thickness no greater than 50 nm.
19. A method of detecting radiation using the phototransistor of claim 14, the method comprising: exposing the single-crystalline inorganic semiconductor film to the radiation, whereby charge carries are photogenerated and a drain current is modulated; and detecting the modulation of the drain current.
20. A device array comprising at least two optoelectronic devices, each of the at least two optoelectronic device comprising: an optical cavity comprising a reflector and a dielectric spacer overlying the reflector; and a single-crystalline inorganic semiconductor film having a thickness no greater than 100 nm in contact with the dielectric spacer at a non-epitaxial interface, wherein the at least two optoelectronic devices have different absorption spectra.
21. The device array of claim 20, wherein the single-crystalline inorganic semiconductor films in the at least two optoelectronic devices have different thicknesses.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Illustrative embodiments of the invention will hereafter be described with reference to the accompanying drawings, wherein like numerals denote like elements.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
DETAILED DESCRIPTION
(13) Optoelectronic devices that use very thin single-crystalline inorganic semiconductor films as phonon-absorbing layers in combination with non-lattice optical cavities are provided. The optoelectronic devices include photodetectors, such as phototransistors. By combining thin single-crystalline semiconductor films with optical cavities, the devices are able to enhance light-matter interactions based on a nanocavity interference mechanism, which greatly enhances the weak light absorption by the thin semiconductor films. Additionally, photodetectors incorporating the thin semiconductor films have very low dark currents and, as a result, high photocurrent to dark current ratios.
(14) The layers in an optoelectronic device are shown schematically in
(15) The single-crystalline semiconductor film is a photoactive materialmeaning that it is able to absorb incident radiation and generate a photocurrent. A variety of photoactive semiconductor materials can be used for the single-crystalline semiconductor film, including single element, alloyed, and compound semiconductors of Group IV elements, Group II-VI elements, and Group III-V elements, and perovskites. Examples of semiconductors from which the single-crystalline film can be formed include, Ge, Si, SiGe, GaAs, InP, GaInAs, GaInAsP, GaN, and HgCdTe. Two-dimensional (2D) semiconductors can also be used as the single-crystalline semiconductor. 2D semiconductors are characterized by a two-dimensional bonding geometry in which the atoms are bonded in sheets that are one atomic layer thick. 2D semiconductors include graphene; but also include 2D materials other than graphene. In some embodiments, the 2D semiconductor is a transition metal (for example, a Mo-containing or W-containing) dichalcogenide (for example, S, Se, or Te) (TMDC). These include MoS.sub.2; but also includes TMDCs other than MoS.sub.2, such as WS.sub.2, MoTe.sub.2, MoSe.sub.2, WSe.sub.2, SnS.sub.2, SnSe.sub.2, and the like. Nanometer thin phosphorus crystalline films, such as black phosphorus, could also be used. Optionally, the semiconductor may be doped to improve or optimize its bandgap. The single-crystalline semiconductor films need not be patterned to achieve the enhanced light absorption; continuous films without patterned holes, or other openings, or patterned islands (e.g., disks) can be used.
(16) The selection of semiconductor material will depend, at least in part, on the desired wavelength range of operation for the optoelectronic device. For example, semiconductors that generate electron-hole pairs upon the absorption of radiation in the ultraviolet, visible, and infrared, including near infrared, regions of the electromagnetic spectrum may be selected. By way of illustration, silicon is photoactive in the UV, visible, and near-infrared regions of the electromagnetic spectrum (e.g., from wavelengths around 200 nm to around 1100 nm) and germanium is photoactive with absorption peaks in the visible and near-infrared regions of the electromagnetic spectrum (e.g., from wavelengths around 600 nm to around 1100 nm).
(17) The absorption spectrum and the photoresponse of the semiconductor thin films vary as a function of the film thickness. Therefore, the desirable thickness of the single-crystalline semiconductor film will depend on the desired optical properties of the optoelectronic device. Generally, the semiconductor films should be thin enough to support single-mode absorption and wavelength selectivity. In addition, because thinner films produce a lower dark current, ultra-thin films are desirable. By way of illustration, some embodiments of the single-crystalline semiconductor films have a thickness of no greater than 100 nm. This includes embodiments of the single-crystalline semiconductor films having a thickness of no greater than 50 nm and further includes embodiments of the single-crystalline semiconductor films having a thickness of no greater than 20 nm. For example, single-crystalline semiconductor films having thicknesses in the range from 5 to 100 nm, including in the range from 5 to 60 nm and in the range from 10 to 20 nm, can be used.
(18) The optical cavity serves to enhance radiation absorption by the single-crystalline semiconductor film by increasing light-absorber interactions. The cavity amplifies the absorption of radiation by the photoactive semiconductor at the resonant wavelengths of the cavity via multiple reflections at the reflector/spacer and spacer/semiconductor interfaces. Because the resonant wavelengths of the cavity will depend on cavity length, the dielectric spacer thickness can be tailored to spectrally tune the resonance condition for the cavity. For example, spacers with thicknesses in the range from 20 nm to 300 nm can be used.
(19) The dielectric spacer is optically transparent at the operational wavelengths of the optoelectronic device and is desirably made from a material that can be formed as a thin film with precise thickness control. Dielectric materials that can be grown via Atomic Layer Deposition (ALD) are good candidates. These include semimetal oxides and metal oxides, such as aluminum oxide, Al.sub.2O.sub.3, HfO.sub.2, SiO.sub.2, TiO.sub.2, ZnO, MgO, ZrO.sub.2, WO.sub.3, and the like. Because the single-crystalline semiconductor film need not be grown epitaxially on the dielectric spacer, the material for the spacer can be selected independently from the material of the crystalline semiconductor, without the need for lattice matching, and the interface formed by the two materials can be non-epitaxial. As used herein the term epitaxial structure refers to a structure in which the crystallographic orientation of an overlying layer is determined by (matches or very nearly matches) that of its underlying layer, such that the two layers have the same crystallographic orientation, at least in the area of their interface. Such epitaxial structures may include strains and stresses at the interface, induced by a lattice mismatch between the two materials and may even include misfit dislocations. In contrast to such epitaxial interfaces, non-epitaxial interfaces have crystallographic orientations that are independent from (e.g., different from) those of their neighboring layers and are free from lattice mismatch-induced strains and stresses.
(20) The reflector of the optical cavity should be highly reflective at the operational wavelengths of the optoelectronic device. Metals are good candidates for the reflector material. By way of illustration, silver reflectors can be used for optoelectronic devices that operate in the infrared, including the near infrared, region of the electromagnetic spectrum and aluminum can be used for optoelectronic devices that operate in the ultraviolet region of the electromagnetic spectrum. However, other metals, such as gold, and non-metals can also be used.
(21) Photodetectors are examples of optoelectronic devices. One embodiment of a photodetector having a field effect transistor geometry is shown schematically in
(22) The phototransistor operates as follows. When radiation is incident upon single-crystalline semiconductor film 302, photons having energies greater than the band-gap energy of the semiconductor material are absorbed. This absorption results in the photogeneration of charge carries (electron/hole pairs), which can travel through semiconductor film 302 under an intrinsic or externally-applied electric field. The continuous separation of the photogenerated electron-hole pairs produces a photogenerated drain current, the magnitude of which is proportional to the intensity of the incident radiation. The drain current increases under optical illumination because the incident radiation creates excess electron-hole pairs in the depletion region. Because of this, a photovoltage develops, which modifies the effective gate bias, enhancing the transistor conductivity and increasing the drain current. The resulting modulation of the gate voltage and the drain current can be measured using a current measuring device. The field effect phototransistors can be n-channel transistors or p-channel transistors.
(23) The phototransistors can be fabricated via the release of single-crystalline semiconductor films grown epitaxially on sacrificial substrates and the subsequent transfer of the released films onto the spacer layer of an optical cavity. The release of the single-crystalline films can be carried out by selectively removing (e.g., etching away) the sacrificial growth substrate, or by a Smart Cut process in which a layer of hydrogen ions is implanted below the surface of a bulk layer of the single-crystalline semiconductor and a thin film of the single-crystalline semiconductor is then cleaved away from the bulk layer at the ion implantation layer. Optionally, the resulting released film may be thinned and polished. An embodiment of a Smart Cut process for fabricating a free-standing semiconductor single-crystal film, followed by the transfer of the single-crystal film to an optical cavity is illustrated in the Example.
(24) The optoelectronic devices are able to provide a high normalized photocurrent to dark current ratio (NPDR). For example, photocurrent to dark current ratios of at least 110.sup.4, at least 210.sup.4, and at least 310.sup.4 can be achieved under a bias of 1 V when illuminated with broadband light source (e.g., Xenon light source ASB-XE-175) at an incident power of 40 nW.
(25) Because the spectral responses of the optoelectronic devices can be tailored based on the thickness of the single-crystalline semiconductor film, arrays of the optoelectronic devices having different spectra responses can be assembled to cover a desired spectral response range. Such arrays include a plurality of the optoelectronic devices and within this plurality of devices, at least some of the optoelectronic devices absorb radiation and generate a photoresponse at different wavelengths than other optoelectronic devices. Thus, arrays of photodetectors could be designed to detect radiation over the entire infrared region, the entire visible region, and/or the entire ultraviolet region of the electromagnetic spectrum. Within the arrays, the optoelectronic devices can be arranged in a regular pattern or an irregular or random pattern. The arrays may include, for example, ten or more optoelectronic devices, 100 or more optoelectronic devices, 1000 or more optoelectronic devices, or even 10,000 or more optoelectronic devices.
EXAMPLE
(26) Results and Discussion
(27) Ultra-Thin Crystalline Ge on Foreign Substrates
(28) In this example, the membrane transfer method was first employed to realize the integration of crystalline semiconductor films with a foreign substrate, as shown in
(29) To reveal the crystalline quality of the Ge membrane, high-resolution X-ray diffraction (HR-XRD) characterization was performed.
(30) Foreign Substrate with Effective Photon Management
(31) Predesigned foreign substrates allow a functionalized nanocavity structure to be used to greatly improve the light absorption in nanometer-thin Ge films. The absorption depth of Ge varies from approximately 120 nm (at the wavelength of 700 nm) to 390 nm (at the wavelength of 900 nm), much thicker than these thin films. In this case, the absorption in a 20-nm-thick region is less than 16% in this wavelength range. To overcome this limitation of weak absorption, a layered substrate that consists of a 220-nm-thick lossless dielectric spacer and a reflective Ag mirror was used to form a functionalized nanocavity structure (
(32) Nanocavity Enhanced Photodetector
(33) The schematic of a nanocavity enhanced photodetector device and its optical microscope image are shown in
(34) Stable and Improved Normalized Photo-Current-to-Dark-Current-Ratio
(35) One important figure of merit for metal-semiconductor-metal (MSM) photodetectors is the normalized photo-current-to-dark-current-ratio [NPDR=(|I.sub.DS|/I.sub.dark)/P.sub.inc]. A larger value of this parameter indicates better suppression of dark current without sacrificing photoresponsivity. Considering the previously reported MSM photodetector based on Ge wafers, the highest reported NPDR, to our knowledge, was 3,158 mW.sup.1. In contrast, under the bias of 1 V, the NPDR of this device was in the range of 10.sup.4 mW.sup.1 (
(36) In addition to the stability of NPDR, the enhanced NPDR compared with previous reports can be attributed to two mechanisms. The first one is the suppression of the dark current, I.sub.dark, introduced by the ultra-thin Ge film. In order to verify the suppression, photoconductors were fabricated with various Ge thicknesses and their dark currents (
(37) Device Physics
(38) General Electronic Properties of the Single-Crystalline Nanomembrane Transistor
(39) To further interpret the electronic properties of the single-crystalline Ge nanomembrane transistor, the dark drain-source current, |I.sub.DS|, of the device with the 17-nm-thick Ge film (discussed in
(40) Gate Controlled Photocurrent Response
(41) To reveal the gate-controlled optical response of this device, the V.sub.DS was then swept under different V.sub.GS in a steady optical incidence condition of 140.8 mW/cm.sup.2. As shown in
(42) In contrast, the photogating effect in the developed cavity-manipulated ultra-thin nanomembrane phototransistor was mostly caused by the high optical absorption and corresponding photo-generated carriers confined within the ultra-thin Ge films, rather than the trap states. The high absorption at the desired wavelength could be precisely controlled by tuning the thickness of either Ge or Al.sub.2O.sub.3 layers. The absorbed photons generated carriers confined in the Ge channel, resulting in improved photoconductivity. To reveal the photo gating effect quantitatively (i.e., |I.sub.DS|=|G.sub.m|V.sub.TH, where V.sub.TH is the photon-induced change of the threshold voltage), the relationship of the photo current, I.sub.DS, with the device trans-conductance |G.sub.m|, (|G.sub.m|=|I.sub.DS/V.sub.GS|), which can be extracted from
(43) In addition, the photo gating effect expression (i.e., |I.sub.DS|=|G.sub.m|V.sub.TH) showed that with a given V.sub.GS, a bigger change of threshold voltage, V.sub.TH, lead to a larger photo current, |I.sub.DS|. To compare the device with a typical phototransistor based on epitaxially-grown high-quality III-V materials with similar photo gating effects, which do not rely on trap states either, the V.sub.TH of both devices in
(44) Notably, by adding a gate voltage to the device, a high density of charge carriers in the ultrathin film is induced due to plasma effects. Thus, the extinction ratio (k) will be increased. Due to the Kramers-Kronig relations of the refractive index (n) with extinction ratio (k), the n also will be changed when the extinction ratio (k) changes. These changes lead to tunable spectral response of the device. By adding the gate voltage up to 3 volts, the peak sensing wavelength can be tuned up to 15 nm, which takes up 50% of one optical communication bandwidth. For example, the dense wavelength division multiplexing (DWDM) uses the C-band (1530 nm to 1565 nm) as the total bandwidth of the communication, the total bandwidth is about 35 nm. Therefore, the device can cover a whole optical communication bandwidth.
(45) Spectral Response and Tunability: The Potential for Multi-Spectral Sensing on the Same Chip
(46) The ultra-thin thickness, in addition to its benefit in electrical properties, also provides a new optical functionality for multi-spectral sensing because its response exhibits strong spectral tunability. To demonstrate this tunability, a series of nanocavity manipulated photodetectors was fabricated by changing the thickness of the Ge membrane on a 220 nm-Al.sub.2O.sub.3/Ag cavity.
CONCLUSION
(47) In summary, a nanocavity-enhanced single-crystalline Ge nanomembrane photodetector was developed. The fabrication processes successfully thinned down the Ge films to as thin as 10 nm and maintained the single-crystal material quality of the nanomembranes. The photoresponsivity could reach up to 4.7 A/W, resulting from the enhanced absorption and gate modulation. Due to the significantly reduced volume of the active material, the dark current was reduced significantly. Along with the increased photocurrent due to the enhanced optical absorption within Ge nanomembranes, NPDR as high as 10.sup.5 mW.sup.1 was realized. By characterizing the gate-controlled performance, the device physics of this ultra-thin film photodetector were analyzed, and showed an obvious photo gating effect. The enhanced absorption and confinement of the carriers lead to a large change of threshold voltage and thus enhanced photoconductivity. By integrating the Ge membranes (1030 nm) with predesigned nanocavities, spectrally tunable thin-film phototransistors were demonstrated. Importantly, due to the CMOS compatible processes, the proposed single-crystal Ge membrane ultra-thin-film transistors can be fabricated over a large scale (e.g. wafer scale), which is superior to current 2D-material-based optoelectronic devices and can be a competivite building block for the next generation of functional electronic/optoelectronic circuits.
(48) Fabrication and Characterization of the Lab-Made GeOI Wafer
(49) The smart-cut process was used to fabricate the GeOI. (See, L. Tang et al., Nanometre-scale germanium photodetector enhanced by a near-infrared dipole antenna. Nat. Photonics. 2, 226-229 (2008).) The process started with a p-type (gallium doped) 4-inch bulk Ge wafer. A uniform H.sup.+ layer was ion-implanted in the germanium wafer with a dose of 110.sup.17 cm.sup.2 and an energy of 100 KeV (shown in
(50) To characterize the lab-made GeOI, the Panalytical X'Pert MRD high resolution X-ray diffraction (XRD) was used to characterize the single crystallinity of the germanium membrane.
(51) TABLE-US-00001 TABLE 1 Electronic properties of p-type GeOI sample Parameter P-Type GeOI Sheet Resistance (R.sub.s) 617.7 / Hall Coefficient (R.sub.H) 97.9 m.sup.2/C Carrier Mobility (.sub.p) 393 cm.sup.2 V.sup.1 .Math. S.sup.1 (hole) Carrier Concentration 1.447 10.sup.18/cm.sup.2
(52) The word illustrative is used herein to mean serving as an example, instance, or illustration. Any aspect or design described herein as illustrative is not necessarily to be construed as preferred or advantageous over other aspects or designs. Further, for the purposes of this disclosure and unless otherwise specified, a or an means one or more.
(53) The foregoing description of illustrative embodiments of the invention has been presented for purposes of illustration and of description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and modifications and variations are possible in light of the above teachings or may be acquired from practice of the invention. The embodiments were chosen and described in order to explain the principles of the invention and as practical applications of the invention to enable one skilled in the art to utilize the invention in various embodiments and with various modifications as suited to the particular use contemplated. It is intended that the scope of the invention be defined by the claims appended hereto and their equivalents.